Finite temperature physics of topological Kondo insulator: Stable Haldane phase, Emergent energy scale and Beyond
arXiv:1710.02978 · doi:10.1007/s11467-018-0868-x
Abstract
We have studied the one-dimensional -wave periodic Anderson model at finite temperature with the help of the numerically exact determinant quantum Monte Carlo simulation. It is found that the topological Haldane phase established for ground-state is still stable against small thermal fluctuation and its characteristic edge magnetization develops at low temperature. Moreover, the saturated low- spin structure factor and the -law of susceptibility are useful to detect the free edge spin moment, which may be relevant for experimental explorations. We have also comparatively studied the conventional -wave periodic Anderson model, which helps us identify an emergent energy scale . signals a crossover into interesting low- regime and seems to be the expected Ruderman-Kittel-Kasuya-Yosida (RKKY) coupling. Finally, the collective Kondo screening effect has been examined and it is heavily reduced at boundary, which may give a fruitful playground for novel physics beyond the well-established Haldane state and topological band insulators.
10 pages, 7 figures, revised